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首页> 外文期刊>International Journal of Heat and Mass Transfer >Axisymmetric lattice Boltzmann simulation of the heat-exchanger method-based sapphire crystal growth
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Axisymmetric lattice Boltzmann simulation of the heat-exchanger method-based sapphire crystal growth

机译:基于热交换器的蓝宝石晶体生长的轴对称晶格玻尔兹曼模拟

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摘要

The crystal-growth process in a heat-exchanger method (HEM)-based system was simulated using the lattice Boltzmann technique. The two-dimensional enthalpy-based lattice Boltzmann model was extended to treat the axisymmetric solid-liquid phase change problems. The proposed model demonstrates high accuracy over a large range of Biot and Stefan numbers and exhibits superiority over the first-order perturbation method, especially, in cases involving large Stefan numbers. Macroscopic crystal-growth simulations primarily focus on flow patterns in the melt and heat-transfer processes inside the crucible. Effects of dimensionless convective boundaries and Rayleigh numbers (Ra) on transport phenomena and the crystal/melt interface have also been discussed. It was observed that a decrease in the superheating temperature causes an increase in crystal fraction and decline in convection intensity. The area of the cooling zone mainly influences crystal growth rate during the initial stages of the process. In the later stages, however, the Biot number corresponding to the heating boundary assumes a more significant role. At low Rayleigh numbers, heat transfer via conduction is dominant in the melt. With increase in Ra values, melt convection tends to strengthen, thereby tending to deform the isothermal lines and phase interface. (C) 2018 Elsevier Ltd. All rights reserved.
机译:使用晶格玻尔兹曼技术模拟了基于热交换方法(HEM)的系统中的晶体生长过程。扩展了基于焓的二维格子Boltzmann模型,以解决轴对称固液相变问题。所提出的模型在大范围的毕奥数和Stefan数上显示出很高的准确性,并且比一阶摄动法表现出优越性,尤其是在涉及大Stefan数的情况下。宏观晶体生长模拟主要关注坩埚内部熔体和传热过程中的流动模式。还讨论了无因次对流边界和瑞利数(Ra)对传输现象和晶体/熔体界面的影响。观察到,过热温度的降低引起晶体分数的增加和对流强度的降低。在工艺的初始阶段,冷却区的面积主要影响晶体的生长速率。然而,在随后的阶段中,与加热边界相对应的比奥数扮演着更重要的角色。在低瑞利数下,通过传导的热传递在熔体中占主导地位。随着Ra值的增加,熔体对流趋于增强,从而趋于使等温线和相界面变形。 (C)2018 Elsevier Ltd.保留所有权利。

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